Hydrothermally deposited protective and bioactive coating for magnesium alloys for implant application

Biocompatible and bioresorbable magnesium and its alloys could be ideal alternatives for currently used implants (Ti, Co–Cr alloys) to overcome their drawbacks of stress shielding and requirement for second surgery when they are used as temporary implants. However, the high corrosion rate of magnesi...

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Main Authors: Falahieh Asl, Sara Kaabi, Nemeth, Sandor, Tan, Ming Jen
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2016
Subjects:
Online Access:https://hdl.handle.net/10356/85043
http://hdl.handle.net/10220/40982
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-850432020-03-07T12:47:13Z Hydrothermally deposited protective and bioactive coating for magnesium alloys for implant application Falahieh Asl, Sara Kaabi Nemeth, Sandor Tan, Ming Jen School of Mechanical and Aerospace Engineering A*STAR SIMTech Magnesium Calcium–phosphate Biocompatible and bioresorbable magnesium and its alloys could be ideal alternatives for currently used implants (Ti, Co–Cr alloys) to overcome their drawbacks of stress shielding and requirement for second surgery when they are used as temporary implants. However, the high corrosion rate of magnesium and its alloys limit their practical application. Thus, in this study, a hydrothermal coating process was developed to provide coatings that may slow the corrosion of magnesium. The hydrothermal process produced a biocompatible and bioresorbable monetite (CaHPO4) coating on AZ31 magnesium substrates. The composition and morphology of coatings were influenced by the deposition temperature. X-ray diffraction (XRD) patterns indicated sharp and well-defined peaks of monetite at low deposition temperature and a mixture of monetite and tricalcium phosphate at higher deposition temperature. Scanning electron microscopy (SEM) study of the morphology showed an increasingly denser coating with higher deposition temperature. Coating adhesion properties were evaluated by a pull-out test indicating cohesive failure at 5.2 to 5.8 MPa stress. It was found that monetite partially converted to hydroxyapatite after 28 days immersion in simulated body fluid (SBF), confirming the bioactivity of the coatings. The hydrothermal deposition method reported here provides crystalline and dense coatings with strong adhesion. It potentially can be a useful process to deposit corrosion protective and biocompatible layers on complex substrate geometries for implant applications. ASTAR (Agency for Sci., Tech. and Research, S’pore) 2016-07-20T06:46:34Z 2019-12-06T15:56:06Z 2016-07-20T06:46:34Z 2019-12-06T15:56:06Z 2014 Journal Article Falahieh Asl, S. K., Nemeth, S., & Tan, M. J. (2014). Hydrothermally deposited protective and bioactive coating for magnesium alloys for implant application. Surface and Coatings Technology, 258, 931-937. 0257-8972 https://hdl.handle.net/10356/85043 http://hdl.handle.net/10220/40982 10.1016/j.surfcoat.2014.07.055 en Surface and Coatings Technology © 2014 Elsevier.
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic Magnesium
Calcium–phosphate
spellingShingle Magnesium
Calcium–phosphate
Falahieh Asl, Sara Kaabi
Nemeth, Sandor
Tan, Ming Jen
Hydrothermally deposited protective and bioactive coating for magnesium alloys for implant application
description Biocompatible and bioresorbable magnesium and its alloys could be ideal alternatives for currently used implants (Ti, Co–Cr alloys) to overcome their drawbacks of stress shielding and requirement for second surgery when they are used as temporary implants. However, the high corrosion rate of magnesium and its alloys limit their practical application. Thus, in this study, a hydrothermal coating process was developed to provide coatings that may slow the corrosion of magnesium. The hydrothermal process produced a biocompatible and bioresorbable monetite (CaHPO4) coating on AZ31 magnesium substrates. The composition and morphology of coatings were influenced by the deposition temperature. X-ray diffraction (XRD) patterns indicated sharp and well-defined peaks of monetite at low deposition temperature and a mixture of monetite and tricalcium phosphate at higher deposition temperature. Scanning electron microscopy (SEM) study of the morphology showed an increasingly denser coating with higher deposition temperature. Coating adhesion properties were evaluated by a pull-out test indicating cohesive failure at 5.2 to 5.8 MPa stress. It was found that monetite partially converted to hydroxyapatite after 28 days immersion in simulated body fluid (SBF), confirming the bioactivity of the coatings. The hydrothermal deposition method reported here provides crystalline and dense coatings with strong adhesion. It potentially can be a useful process to deposit corrosion protective and biocompatible layers on complex substrate geometries for implant applications.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Falahieh Asl, Sara Kaabi
Nemeth, Sandor
Tan, Ming Jen
format Article
author Falahieh Asl, Sara Kaabi
Nemeth, Sandor
Tan, Ming Jen
author_sort Falahieh Asl, Sara Kaabi
title Hydrothermally deposited protective and bioactive coating for magnesium alloys for implant application
title_short Hydrothermally deposited protective and bioactive coating for magnesium alloys for implant application
title_full Hydrothermally deposited protective and bioactive coating for magnesium alloys for implant application
title_fullStr Hydrothermally deposited protective and bioactive coating for magnesium alloys for implant application
title_full_unstemmed Hydrothermally deposited protective and bioactive coating for magnesium alloys for implant application
title_sort hydrothermally deposited protective and bioactive coating for magnesium alloys for implant application
publishDate 2016
url https://hdl.handle.net/10356/85043
http://hdl.handle.net/10220/40982
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